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Annual Frequency of Tropical Cyclones Directly Affecting Guangdong Province:Prediction Based on LSTM-FC

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【作者】 胡娅敏陈韵竹何健刘圣军闫文杰赵亮汪明圣李芷卉王娟怀董少柔刘新儒

【Author】 HU Ya-min;CHEN Yun-zhu;HE Jian;LIU Sheng-jun;YAN Wen-jie;ZHAO Liang;WANG Ming-sheng;LI Zhi-hui;WANG Juan-huai;DONG Shao-rou;LIU Xin-ru;Guangdong Climate Center;School of Mathematics and Statistics, Central South University;State Key Laboratory of Numerical Modeling for Atmosphere Sciences and Geophysical Fluid Dynamics(LASG), Institute of Atmospheric Physics, Chinese Academy of Sciences;

【通讯作者】 刘新儒;

【机构】 Guangdong Climate CenterSchool of Mathematics and Statistics, Central South UniversityState Key Laboratory of Numerical Modeling for Atmosphere Sciences and Geophysical Fluid Dynamics(LASG), Institute of Atmospheric Physics, Chinese Academy of Sciences

【摘要】 Tropical cyclone(TC) annual frequency forecasting is significant for disaster prevention and mitigation in Guangdong Province. Based on the NCEP-NCAR reanalysis and NOAA Extended Reconstructed global sea surface temperature(SST) V5 data in winter, the TC frequency climatic features and prediction models have been studied.During 1951-2019, 353 TCs directly affected Guangdong with an annual average of about 5.1. TCs have experienced an abrupt change from abundance to deficiency in the mid to late 1980 with a slightly decreasing trend and a normal distribution. 338 primary precursors are obtained from statistically significant correlation regions of SST, sea level pressure, 1000hPa air temperature, 850hPa specific humidity, 500hPa geopotential height and zonal wind shear in winter.Then those 338 primary factors are reduced into 19 independent predictors by principal component analysis(PCA).Furthermore, the Multiple Linear Regression(MLR), the Gaussian Process Regression(GPR) and the Long Short-term Memory Networks and Fully Connected Layers(LSTM-FC) models are constructed relying on the above 19 factors. For three different kinds of test sets from 2010 to 2019, 2011 to 2019 and 2010 to 2019, the root mean square errors(RMSEs) of MLR, GPR and LSTM-FC between prediction and observations fluctuate within the range of 1.05-2.45,1.00-1.93 and 0.71-0.95 as well as the average absolute errors(AAEs) 0.88-1.0, 0.75-1.36 and 0.50-0.70, respectively.As for the 2010-2019 experiment, the mean deviations of the three model outputs from the observation are 0.89, 0.78 and 0.56, together with the average evaluation scores 82.22, 84.44 and 88.89, separately. The prediction skill comparisons unveil that LSTM-FC model has a better performance than MLR and GPR. In conclusion, the deep learning model of LSTM-FC may shed light on improving the accuracy of short-term climate prediction about TC frequency. The current research can provide experience on the development of deep learning in this field and help to achieve further progress of TC disaster prevention and mitigation in Guangdong Province.

【Abstract】 Tropical cyclone(TC) annual frequency forecasting is significant for disaster prevention and mitigation in Guangdong Province. Based on the NCEP-NCAR reanalysis and NOAA Extended Reconstructed global sea surface temperature(SST) V5 data in winter, the TC frequency climatic features and prediction models have been studied.During 1951-2019, 353 TCs directly affected Guangdong with an annual average of about 5.1. TCs have experienced an abrupt change from abundance to deficiency in the mid to late 1980 with a slightly decreasing trend and a normal distribution. 338 primary precursors are obtained from statistically significant correlation regions of SST, sea level pressure, 1000hPa air temperature, 850hPa specific humidity, 500hPa geopotential height and zonal wind shear in winter.Then those 338 primary factors are reduced into 19 independent predictors by principal component analysis(PCA).Furthermore, the Multiple Linear Regression(MLR), the Gaussian Process Regression(GPR) and the Long Short-term Memory Networks and Fully Connected Layers(LSTM-FC) models are constructed relying on the above 19 factors. For three different kinds of test sets from 2010 to 2019, 2011 to 2019 and 2010 to 2019, the root mean square errors(RMSEs) of MLR, GPR and LSTM-FC between prediction and observations fluctuate within the range of 1.05-2.45,1.00-1.93 and 0.71-0.95 as well as the average absolute errors(AAEs) 0.88-1.0, 0.75-1.36 and 0.50-0.70, respectively.As for the 2010-2019 experiment, the mean deviations of the three model outputs from the observation are 0.89, 0.78 and 0.56, together with the average evaluation scores 82.22, 84.44 and 88.89, separately. The prediction skill comparisons unveil that LSTM-FC model has a better performance than MLR and GPR. In conclusion, the deep learning model of LSTM-FC may shed light on improving the accuracy of short-term climate prediction about TC frequency. The current research can provide experience on the development of deep learning in this field and help to achieve further progress of TC disaster prevention and mitigation in Guangdong Province.

【基金】 National Key R&D Program of China(2017YFA0605004);Guangdong Major Project of Basic and Applied Basic Research (2020B0301030004);National Basic R&D Program of China (2018YFA0606203);Special Fund of China Meteorological Administration for Innovation and Development (CXFZ2021J026);Special Fund for Forecasters of China Meteorological Administration (CMAYBY2020-094);Graduate Independent Exploration and Innovation Project of Central South University (2021zzts0477);Science and Technology Planning Program of Guangdong Province(20180207)
  • 【文献出处】 Journal of Tropical Meteorology ,热带气象学报(英文版) , 编辑部邮箱 ,2022年01期
  • 【分类号】P444;P429
  • 【被引频次】1
  • 【下载频次】73
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